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Chromium-Based Polypyrrole/MIL-101 Nanocomposite as an Effective Sorbent for Headspace Microextraction of Methyl tert-Butyl Ether in Soil Samples

机译:铬基聚吡咯/ MIL-101纳米复合材料作为土壤样品中甲基叔丁基醚的顶空微萃取的有效吸附剂

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摘要

The performance of headspace solid-phase microextraction (HS-SPME) was upgraded by easy and low-cost preparation of a new nanocomposite fiber. A polypyrrole/chromium-based metal–organic framework, PPy@MIL-101(Cr), nanocomposite was electrochemically synthesized and simultaneously coated on a steel wire as a microextraction sorbent. The morphology and chemical structure of the prepared nanocomposite was characterized by Fourier-transform infrared spectrometry (FT-IR), scanning electron microscopy (SEM), and energy dispersive X-ray analysis (EDX) techniques. The microsorbent was used for sampling of methyl- -butyl ether (MTBE) in solid samples, through an HS-SPME sampling strategy, followed by GC-FID measurement. The optimal experimental conditions, including extraction temperature, extraction time, and GC desorption conditions, were evaluated and optimized. The proposed procedure showed good sensitivity (limit of detection was 0.01 ng·g ) and precision (relative standard deviation was 8.4% for six replicated analyses). The calibration curve was linear over the range of 5–40,000 ng·g , with a correlation coefficient of 0.994. The limit of quantification was 0.4 ng·g . The fabricated fiber exhibited good repeatability and reproducibility for the sampling of MTBE, with average recovery values of 88–114%. The intra-fiber and inter-fiber precisions were found to be 8.4% and 19%, respectively. The results demonstrated the superiority of the PPy@MIL-101(Cr)-coated fiber in comparison with handmade (polypyrrole, PPY) and commercial fibers (polyacrylate, PA; polydimethylsiloxane, PDMS; and divinylbenzene/carboxen/polydimethylsiloxane, DVB/CAR/PDMS) for the analysis of solid samples. The developed method was successfully employed for the analysis of MTBE in different soil samples contaminated by oil products.
机译:顶空固相微萃取(HS-SPME)的性能通过简便,低成本地制备新型纳米复合纤维得到了提升。电化学合成了一种聚吡咯/铬基金属有机骨架PPy @ MIL-101(Cr),并同时将其涂覆在钢丝上作为微萃取吸附剂。通过傅立叶变换红外光谱(FT-IR),扫描电子显微镜(SEM)和能量色散X射线分析(EDX)技术对制备的纳米复合材料的形貌和化学结构进行了表征。通过HS-SPME采样策略,使用微量吸附剂对固体样品中的甲基-丁基醚(MTBE)进行采样,然后进行GC-FID测量。评估和优化了最佳实验条件,包括提取温度,提取时间和GC解吸条件。所提出的方法显示出良好的灵敏度(检测限为0.01 ng·g)和精密度(六次重复分析的相对标准偏差为8.4%)。校准曲线在5–40,000 ng·g范围内呈线性,相关系数为0.994。定量限为0.4 ng·g。制成的纤维对MTBE的采样显示出良好的可重复性和可重复性,平均回收率为88–114%。光纤内和光纤间的精度分别为8.4%和19%。结果表明,与手工纤维(聚吡咯,PPY)和商业纤维(聚丙烯酸酯,PA;聚二甲基硅氧烷,PDMS;以及二乙烯基苯/羧基/聚二甲基硅氧烷,DVB / CAR /)相比,PPy @ MIL-101(Cr)涂层的纤维具有优越性PDMS)用于分析固体样品。所开发的方法已成功地用于分析石油产品污染的不同土壤样品中的MTBE。

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